论文标题
深度耦合方案中开路QED系统的非经典性
Nonclassicality of open circuit QED systems in the deep-strong coupling regime
论文作者
论文摘要
从理论上讲,我们研究了深度耦合(DSC)制度中Qubit谐振系统的基态如何受环境耦合的影响。我们用作Qubit谐振器 - 环境系统基态的变异ANSATZ,一个依赖于Qubit-State依赖性方向的相干状态的叠加。我们表明,由于在resonator相空间中DSC系统的特征系统的旋转对称性损坏,因此Qubit谐振系统的降低密度矩阵很大程度上取决于该系统如何与环境耦合,即电容性或感应性。当谐振器以不同的方式与Qubit和环境伴侣(例如,一个是电感性,另一个是电容性)时,该系统几乎不受谐振器 - 波导耦合的影响。相反,当两个耦合是相同类型的(例如,两者都是感应性的)时,通过提高谐振器 - 波导耦合强度,虚拟光子的平均数量增加,并且在Qubit-resonakon纠缠的基态基态固态中实现的量子叠加部分被部分脱脂。由于叠加会随着量子谐振器耦合而变得更加脆弱,因此存在最佳的耦合强度,以最大程度地提高Qubit-Resonator系统的非经典性。
We investigate theoretically how the ground state of a qubit-resonator system in the deep-strong coupling (DSC) regime is affected by the coupling to an environment. We employ as a variational ansatz for the ground state of the qubit-resonator-environment system a superposition of coherent states displaced in qubit-state-dependent directions. We show that the reduced density matrix of the qubit-resonator system strongly depends on how the system is coupled to the environment, i.e., capacitive or inductive, because of the broken rotational symmetry of the eigenstates of the DSC system in the resonator phase space. When the resonator couples to the qubit and the environment in different ways (for instance, one is inductive and the other is capacitive), the system is almost unaffected by the resonator-waveguide coupling. In contrast, when the two couplings are of the same type (for instance, both are inductive), by increasing the resonator-waveguide coupling strength, the average number of virtual photons increases and the quantum superposition realized in the qubit-resonator entangled ground state is partially degraded. Since the superposition becomes more fragile with increasing the qubit-resonator coupling, there exists an optimal coupling strength to maximize the nonclassicality of the qubit-resonator system.